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pubmed-article:16685992pubmed:dateCreated2006-5-11lld:pubmed
pubmed-article:16685992pubmed:abstractTextShape priors attempt to represent biological variations within a population. When variations are global, Principal Component Analysis (PCA) can be used to learn major modes of variation, even from a limited training set. However, when significant local variations exist, PCA typically cannot represent such variations from a small training set. To address this issue, we present a novel algorithm that learns shape variations from data at multiple scales and locations using spherical wavelets and spectral graph partitioning. Our results show that when the training set is small, our algorithm significantly improves the approximation of shapes in a testing set over PCA, which tends to oversmooth data.lld:pubmed
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pubmed-article:16685992pubmed:pagination459-67lld:pubmed
pubmed-article:16685992pubmed:dateRevised2009-12-11lld:pubmed
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pubmed-article:16685992pubmed:year2005lld:pubmed
pubmed-article:16685992pubmed:articleTitleMultiscale 3D shape analysis using spherical wavelets.lld:pubmed
pubmed-article:16685992pubmed:affiliationCollege of Computing, Georgia Institute of Technology, Atlanta, GA 30332-0280, USA. delfin@cc.gatech.edulld:pubmed
pubmed-article:16685992pubmed:publicationTypeJournal Articlelld:pubmed
pubmed-article:16685992pubmed:publicationTypeEvaluation Studieslld:pubmed
pubmed-article:16685992pubmed:publicationTypeResearch Support, N.I.H., Extramurallld:pubmed